A Hierarchical Whole-body Modeling Approach Elucidates the Link between in Vitro Insulin Signaling and in Vivo Glucose Homeostasis

被引:53
作者
Nyman, Elin [1 ]
Brannmark, Cecilia [1 ]
Palmer, Robert [1 ]
Brugard, Jan [3 ]
Nystrom, Fredrik H. [2 ]
Stralfors, Peter [1 ]
Cedersund, Gunnar [1 ,4 ]
机构
[1] Linkoping Univ, Dept Clin & Expt Med Diabet & Integrat Syst Biol, SE-58185 Linkoping, Sweden
[2] Linkoping Univ, Dept Med & Hlth Sci, SE-58185 Linkoping, Sweden
[3] MathCore Engn AB, SE-58330 Linkoping, Sweden
[4] Freiburg Inst Adv Sci, Sch Life Sci, D-79104 Freiburg, Germany
基金
瑞典研究理事会;
关键词
ADIPOSE-TISSUE; SYSTEMS BIOLOGY; PHOSPHORYLATION; ADIPOCYTES; TRANSPORT; RESISTANCE; BINDING; LEVEL; MASS; OBESITY;
D O I
10.1074/jbc.M110.188987
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Type 2 diabetes is a metabolic disease that profoundly affects energy homeostasis. The disease involves failure at several levels and subsystems and is characterized by insulin resistance in target cells and tissues (i.e. by impaired intracellular insulin signaling). We have previously used an iterative experimental-theoretical approach to unravel the early insulin signaling events in primary human adipocytes. That study, like most insulin signaling studies, is based on in vitro experimental examination of cells, and the in vivo relevance of such studies for human beings has not been systematically examined. Herein, we develop a hierarchical model of the adipose tissue, which links intracellular insulin control of glucose transport in human primary adipocytes with whole-body glucose homeostasis. An iterative approach between experiments and minimal modeling allowed us to conclude that it is not possible to scale up the experimentally determined glucose uptake by the isolated adipocytes to match the glucose uptake profile of the adipose tissue in vivo. However, a model that additionally includes insulin effects on blood flow in the adipose tissue and GLUT4 translocation due to cell handling can explain all data, but neither of these additions is sufficient independently. We also extend the minimal model to include hierarchical dynamic links to more detailed models (both to our own models and to those by others), which act as submodules that can be turned on or off. The resulting multilevel hierarchical model can merge detailed results on different subsystems into a coherent understanding of whole-body glucose homeostasis. This hierarchical modeling can potentially create bridges between other experimental model systems and the in vivo human situation and offers a framework for systematic evaluation of the physiological relevance of in vitro obtained molecular/cellular experimental data.
引用
收藏
页码:26028 / 26041
页数:14
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